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Adaptive system correction for robust Fourier ptychographic imaging.用于稳健傅里叶叠层成像的自适应系统校正
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傅里叶叠层成像中的光谱复用与相干态分解

Spectral multiplexing and coherent-state decomposition in Fourier ptychographic imaging.

作者信息

Dong Siyuan, Shiradkar Radhika, Nanda Pariksheet, Zheng Guoan

机构信息

Biomedical Engineering, Electrical and Computer Engineering, University of Connecticut, Storrs, CT, 06269, USA.

出版信息

Biomed Opt Express. 2014 May 9;5(6):1757-67. doi: 10.1364/BOE.5.001757. eCollection 2014 Jun 1.

DOI:10.1364/BOE.5.001757
PMID:24940538
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4052909/
Abstract

Information multiplexing is important for biomedical imaging and chemical sensing. In this paper, we report a microscopy imaging technique, termed state-multiplexed Fourier ptychography (FP), for information multiplexing and coherent-state decomposition. Similar to a typical Fourier ptychographic setting, we use an array of light sources to illuminate the sample from different incident angles and acquire corresponding low-resolution images using a monochromatic camera. In the reported technique, however, multiple light sources are lit up simultaneously for information multiplexing, and the acquired images thus represent incoherent summations of the sample transmission profiles corresponding to different coherent states. We show that, by using the state-multiplexed FP recovery routine, we can decompose the incoherent mixture of the FP acquisitions to recover a high-resolution sample image. We also show that, color-multiplexed imaging can be performed by simultaneously turning on R/G/B LEDs for data acquisition. The reported technique may provide a solution for handling the partially coherent effect of light sources used in Fourier ptychographic imaging platforms. It can also be used to replace spectral filter, gratings or other optical components for spectral multiplexing and demultiplexing. With the availability of cost-effective broadband LEDs, the reported technique may open up exciting opportunities for computational multispectral imaging.

摘要

信息复用对于生物医学成像和化学传感至关重要。在本文中,我们报告了一种显微镜成像技术,称为状态复用傅里叶叠层成像(FP),用于信息复用和相干态分解。与典型的傅里叶叠层成像设置类似,我们使用一系列光源从不同入射角照射样品,并使用单色相机获取相应的低分辨率图像。然而,在所报道的技术中,多个光源同时点亮以进行信息复用,因此所获取的图像代表了对应于不同相干态的样品透射轮廓的非相干叠加。我们表明,通过使用状态复用FP恢复程序,我们可以分解FP采集的非相干混合以恢复高分辨率样品图像。我们还表明,可以通过同时打开R/G/B发光二极管进行数据采集来执行颜色复用成像。所报道的技术可能为处理傅里叶叠层成像平台中使用的光源的部分相干效应提供一种解决方案。它还可用于替代光谱滤波器、光栅或其他光学组件进行光谱复用和解复用。随着具有成本效益的宽带发光二极管的出现,所报道的技术可能为计算多光谱成像带来令人兴奋的机会。